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Published on: September 20, 2016
Combinatorial Inactivation of Tumor Suppressors Efficiently Initiates Lung Adenocarcinoma with Therapeutic
Maryam Yousefi1, Gábor Boross2, Carly Weiss2
1Department of Genetics, Stanford University School of Medicine, Stanford, California.
Abstract:
Lung cancer is the leading cause of cancer death worldwide, with lung adenocarcinoma being the most common subtype. Many oncogenes and tumor suppressor genes are altered in this cancer type, and the discovery of oncogene mutations has led to the development of targeted therapies that have improved clinical outcomes. However, a large fraction of lung adenocarcinomas lacks mutations in known oncogenes, and the genesis and treatment of these oncogene-negative tumors remain enigmatic. Here, we perform iterative in vivo functional screens using quantitative autochthonous mouse model systems to uncover the genetic and biochemical changes that enable efficient lung tumor initiation in the absence of oncogene alterations. Generation of hundreds of diverse combinations of tumor suppressor alterations demonstrates that inactivation of suppressors of the RAS and PI3K pathways drives the development of oncogene-negative lung adenocarcinoma. Human genomic data and histology identified RAS/MAPK and PI3K pathway activation as a common feature of an event in oncogene-negative human lung adenocarcinomas. These Onc-negativeRAS/PI3K tumors and related cell lines are vulnerable to pharmacologic inhibition of these signaling axes. These results transform our understanding of this prevalent yet understudied subtype of lung adenocarcinoma.
Significance:
To address the large fraction of lung adenocarcinomas lacking mutations in proto-oncogenes for which targeted therapies are unavailable, this work uncovers driver pathways of oncogene-negative lung adenocarcinomas and demonstrates their therapeutic vulnerabilities.
Insights
Researchers identified key pathways driving lung adenocarcinoma in tumors lacking common mutations. These "oncogene-negative" lung cancers are treatable by targeting the RAS and PI3K signaling pathways.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Lung adenocarcinoma is a leading cause of cancer death globally.
- Targeted therapies exist for oncogene-mutated lung adenocarcinomas, but many cases lack these mutations.
- The development and treatment of oncogene-negative lung adenocarcinoma remain poorly understood.
Purpose of the Study:
- To identify the genetic and biochemical drivers of lung adenocarcinoma in the absence of known oncogene alterations.
- To uncover therapeutic vulnerabilities in these oncogene-negative tumors.
Main Methods:
- Utilized iterative in vivo functional screens in autochthonous mouse models.
- Generated diverse combinations of tumor suppressor alterations.
- Analyzed human genomic data and histology.
Main Results:
- Inactivation of RAS and PI3K pathway suppressors drives oncogene-negative lung adenocarcinoma.
- RAS/MAPK and PI3K pathway activation is common in human oncogene-negative lung adenocarcinomas.
- These tumors are sensitive to pharmacologic inhibition of the RAS/MAPK and PI3K pathways.
Conclusions:
- Uncovered the critical role of RAS/MAPK and PI3K pathway activation in oncogene-negative lung adenocarcinoma.
- Demonstrated therapeutic potential of targeting these pathways in a significant subset of lung cancer patients.
- Provides a new understanding of the underlying mechanisms and treatment strategies for this understudied lung cancer subtype.
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